49

I was wondering how can I create a JSON (JS) object and then clone it.

2
  • 1
    Why "can`t [you] work anymore with javascript array"? JSON is just the array and object literal syntax of Javascript. If you like JSON syntax you should feel right at home when using arrays and objects in Javascipt. Commented Nov 8, 2010 at 0:30
  • Take some time and read this article: There's no such thing as a "JSON Object" Commented Nov 8, 2010 at 0:45

8 Answers 8

62

This is what I do and it works like a charm

if (typeof JSON.clone !== "function") {
    JSON.clone = function(obj) {
        return JSON.parse(JSON.stringify(obj));
    };
}
3
  • @Gobliins Yes it does Commented Mar 26, 2018 at 23:14
  • 4
    But it's worth mentioning that it's converting objects like Dates into strings, etc.
    – A-S
    Commented Dec 20, 2019 at 12:09
  • 1
    Nice, I haven't found out other ways to do a deep copy other than this. Commented Jan 20, 2022 at 22:21
28

Just do

var x = {} //some json object here
var y = JSON.parse(JSON.stringify(x)); //new json object here
2
  • 3
    This approach seems to give rise to some conversion issues between datatypes, in the case of nested JSON objects also including key associated to Array objects. In my case, the cloned object yielded key : {}, instead of the original key : [] The approach in the post below looks, newjsonobj = {...jsonobj}, looks like preferable Commented Aug 31, 2019 at 7:01
  • 1
    It's worth mentioning that this answer (not Sandro's comment) is converting objects like Dates into strings, etc
    – A-S
    Commented Dec 20, 2019 at 12:10
24

As of ES6. Object.assign is a good way to do this.

newjsonobj = Object.assign({}, jsonobj, {})

The items in the first argument mutate the existing object, and the third argument are changes in the new object returned.

In ES7 it is proposed that the spread operator be used.

newjsonobj = {...jsonobj}
1
  • 12
    This creates a shallow clone: Any modifications to the values in the first JSON object will affect the clone (and vice versa), if those values are something mutable like objects or arrays. e.g. var a = {arr:[1,2,3]}; var b = Object.assign({}, a, {}); b.arr[0] = 4; console.log(a.arr); prints out [4, 2, 3] instead of [1, 2, 3] as expected. Commented Jan 4, 2018 at 2:52
12

This is an issue I have often met when parsing JSON and reusing it several times in the code. And you want to avoid re-parsing every time from the original JSON string, or going the serialize/parse way which is the less efficient way.

So in these cases where you want to adjust the parsed object but still keep the original unchanged, use the following function in both server (NodeJs) or client javascript code. The jQuery clone function is less efficient because they treat the cases for functions, regexp, etc. The function below, only treats the JSON supported types (null, undefined, number, string, array and object):

function cloneJSON(obj) {
    // basic type deep copy
    if (obj === null || obj === undefined || typeof obj !== 'object')  {
        return obj
    }
    // array deep copy
    if (obj instanceof Array) {
        var cloneA = [];
        for (var i = 0; i < obj.length; ++i) {
            cloneA[i] = cloneJSON(obj[i]);
        }              
        return cloneA;
    }                  
    // object deep copy
    var cloneO = {};   
    for (var i in obj) {
        cloneO[i] = cloneJSON(obj[i]);
    }                  
    return cloneO;
}
1
  • 1
    best answer. all the other solutions have their vulnerabilities. upvote this one to save other people's time
    – Rafe
    Commented Apr 24, 2021 at 5:18
7

Q1: How to create a JSON object in javascript/jquery?

Creating a Javascript object is so simple:

var user = {}; // creates an empty user object
var user = {firstName:"John", lastName:"Doe"}; // creates a user by initializing 
// its firstName and lastName properties.

After the creation you can add extra fields to your object like user.age = 30;.

If you have the object as a JSON string, you can convert it to a JSON object using built-in JSON.parse(yourJsonString) function or jQuery's $.parseJSON(yourJsonString) function.

Q2: How do I clone a JSON object in javascript/jquery?

My way to clone JSON objects is extend function of jQuery. For example, you can generate a clone of your user object like below:

var cloneUser = $.extend(true, {}, {firstName:"John", lastName:"Doe"});

The first parameter designates whether the clone object will be a shallow or deep copy of the original (see Object copy on wiki).

To see other JSON cloning alternatives you can read this article.

1
  • JSON.parse returns an Object(See: MDN), not a "JSON object", which AFAIK does not exist. (Not to nitpick but this is a point of confusion for many beginners so it might be good to correct it) Commented Jan 20, 2017 at 5:22
5

How to create a JSON object in javascript/jquery?

There is nothing like a JSON object. JSON stands for JavaScript Object Notation and is basically a string that encodes information similar to JavaScript's object literals.

You can however create such an encoding (which would result in a string) with JSON.stringify(object), see JSON in JavaScript. You could also create such a string manually, but it is very error prone and I don't recommend it.

How do I clone a JSON object in javascript/jquery?

As it is just a string:

var jsonString2 = jsonString;

I can`t work anymore with javascript arrays

JSON is a format to exchange data, it is not a data structure you can use in an application.


Maybe you want to read more about JSON, objects in JS and arrays in JS.

9
  • 12
    The second answer is NOT true. The "=" operator will not clone any object but passing the reference.
    – Reinhard
    Commented Mar 23, 2015 at 6:18
  • @Reinhard: I never claimed that it does. JSON in JS only exists as a string. And since strings are immutable, cloning a string is as simple as assigning it to a different variable. Though I agree that in hindsight, the OP may have been talking about JavaScript objects. Commented Mar 23, 2015 at 7:01
  • 5
    @FelixKling: Then it is an answer to an invalid question. It follows it is not an answer. I think it would be better to remove that line to not confuse drive-by-readers and spread mis-wisdom. Commented Apr 8, 2017 at 15:32
  • 1
    Is a JSON object (I just realized I typed array instead) not a key/pair object? I just tested in the browser's console foo = {"x":"y"}; bar= foo; bar.x = "z"; console.log("Foo: "+foo.x+" | Bar: "+bar.x") and it changed both of them to z. Are we talking about a String object that contains JSON formatted data or a JSON object?
    – Matthew
    Commented Nov 30, 2018 at 9:36
  • 1
    This seems like pedantry and is very misleading. The = operator will not clone a "JavaScript object" to use the @Reinhard terminology. Obviously this is what the poster was asking about. Now... I have to go to the ATM machine.
    – cl0rkster
    Commented May 8, 2019 at 15:16
1

We can clone JSON object as below.

EmployeeDetails = 
{
  Name:"John Deer",
  Age:29,
  Company:"ABC Limited."

}

Now create one clone function

function clonning(Employee)
{
  // conversion from Object to String
  var EmployeeString = JSON.stringify(Employee);

  // conversion from String to Object type

  var EmployeeConvertedObject = JSON.parse(EmployeeString);

  // printing before changing prperty value.

  console.log(EmployeeConvertedObject);

  // modifying EmployeeConvertedObject property value 

  EmployeeConvertedObject.Name="Kelvin Bob";

   // printing After changing prperty value.

  console.log(EmployeeConvertedObject);

  // Now printing original json object.

  console.log(Employee);

  // Here original JSON object is not affecting. Only Cloned object affecting.


}

Now Call function.

clonning(EmployeeDetails);

Result:

clonning(EmployeeDetails)
VM212:22 {Name: "John Deer", Age: 29, Company: "ABC Limited."}
VM212:30 {Name: "Kelvin Bob", Age: 29, Company: "ABC Limited."}
VM212:34 {Name: "John Deer", Age: 29, Company: "ABC Limited."}
0

Let's suppose, We have a JSONOBJECT EmailData which have some Data in it. Now if you want the same data in another object (i.e clone the data) then you can do something like this:

JSONOBJECT clone_EmailData=new JSONOBJECT(EmailData.toString());

The above statement will give you a new object with the same data and the new object is not a reference to the EmailData object.

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